Self-consistent treatment of Intra Beam Scattering, betatron coupling, and vertical dispersion in fourth generation light sources
S\'ebastien Joly, Jonas Kallestrup, F\'elix Soubelet

TL;DR
This paper presents a comprehensive self-consistent model for analyzing how intra beam scattering, betatron coupling, and vertical dispersion collectively influence beam emittances in advanced light sources, improving understanding of equilibrium states.
Contribution
It introduces a novel ODE-based framework that simultaneously considers multiple effects affecting beam emittance, including realistic damping partition numbers and their impact on equilibrium conditions.
Findings
Damping partition redistribution significantly affects equilibrium emittances.
Vertical emittance can be controlled via betatron coupling and vertical dispersion.
The model demonstrates the importance of optics modifications on beam quality.
Abstract
The X-ray brightness delivered by fourth-generation light sources strongly depends on the electron beam current and transverse emittance. Reaching higher brilliance and lower emittances are increasingly limited by intra beam scattering, particularly at low and medium beam energies, where low emittances combined with high beam currents result in large phase-space densities. Increasing the vertical emittance through betatron coupling is commonly employed to mitigate intra beam scattering by relaxing the phase-space density. However, the redistribution of damping partition numbers due to coupling, the presence of vertical dispersion, and consequently their impact on the balance between synchrotron radiation and intra beam scattering are often neglected. In this work, we develop a self-consistent Ordinary Differential Equations-based framework to describe both the steady-state and time…
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